[0001] The present subject matter relates generally to a bearing in a gas turbine engine,
or more particularly to an apparatus and method for retention of the outer race of
the bearing.
[0002] A gas turbine engine generally includes a fan and a core arranged in flow communication
with one another with the core disposed downstream of the fan in the direction of
the flow through the gas turbine. The core of the gas turbine engine generally includes,
in serial flow order, a compressor section, a combustion section, a turbine section,
and an exhaust section and is confined within an outer casing. With multi-shaft gas
turbine engines, the compressor section can include a high pressure compressor (HP
compressor) disposed downstream of a low pressure compressor (LP compressor), and
the turbine section can similarly include a low pressure turbine (LP turbine) disposed
downstream of a high pressure turbine (HP turbine). With such a configuration, the
HP compressor is coupled with the HP turbine via a high pressure shaft (HP shaft),
which also is known as the high pressure spool (HP spool). Similarly, the LP compressor
is coupled with the LP turbine via a low pressure shaft (LP shaft), which also is
known as the low pressure spool (LP spool).
[0003] In operation, at least a portion of air over the fan is provided to an inlet of the
core. Such portion of the air is progressively compressed by the LP compressor and
then by the HP compressor until the compressed air reaches the combustion section.
Fuel is mixed with the compressed air and burned within the combustion section to
provide combustion gases. The combustion gases are routed from the combustion section
through the HP turbine and then through the LP turbine. The flow of combustion gasses
through the turbine section drives the HP turbine and the LP turbine, each of which
in turn drives a respective one of the HP compressor and the LP compressor via the
HP shaft (aka HP spool) and the LP shaft (aka LP spool). The combustion gases are
then routed through the exhaust section, e.g., to atmosphere.
[0004] During normal engine operation, a ball bearing assembly can be provided to act along
with the interface shell, which is non-rotatably coupled to the outer casing of the
engine, to retain the axial position of the HP shaft (aka HP spool), and a roller
bearing assembly can be provided to provide radial damping of the fan/rotor system.
A traditional design approach consisting of an axial spring finger housing combined
with a radial squeeze film oil damper can be provided to protect the bearings against
damage during relatively small unbalance load situations. During these normal operating
conditions, the squeeze film damper bearing requires clearance in all directions around
the bearing (radial, tangential & axial) for dynamic operation. However, such axial
spring finger housing contains relatively long axial spring fingers for retention
of the ball bearing housing, and the long spring fingers take up space in the engine
housing, add weight to the engine, have limited torsional load capability and are
complicated for manufacture.
[0005] Moreover, in a failure mode that results from a liberated fan blade, a liberated
compressor blade or a liberated turbine blade, very high radial loads combined with
very high torsional windup provide significant design challenges to the bearings and
to the spring finger housing for the ball bearing. The radial load closes the damper
gap and the radial bumper gap and creates a harmonic drive effect that loads the spring
fingers in torsion. This torsion load on the bearing and its retention housing structure
results in an opposing sinusoidal load distribution that twists the spring fingers
enough so that the spring fingers develop cracks, which are very undesirable.
[0006] Various aspects and advantages of the invention will be set forth in part in the
following description, or may be clear from the description, or may be learned through
practice of the invention.
[0007] In one exemplary embodiment of the present disclosure, a housing structure for retention
of the outer race of a ball bearing that acts to retain the axial position of the
HP shaft has spring fingers that are flat and short. The retention housing includes
a spring finger housing connected to a ball bearing housing that is disposed radially
inwardly from the spring finger housing. The forward end of the spring finger housing
is connected to the forward end of the ball bearing housing via a connecting web,
and the spring finger housing includes a plurality of spring fingers.
[0008] The aft end of the ball bearing housing includes a plurality of edge recesses that
extend radially into the aft end of the ball bearing housing, and each edge recess
has an open end that is facing toward the spring finger housing. Each edge recess
includes a blind end that is spaced apart in the radial direction from the open end
of the edge recess. Each edge recess is further defined by a forward wall that extends
in the radial direction from the open end to the blind end. Each of the plurality
of edge recesses is spaced apart from each other edge recess in the circumferential
direction around the aft end of the ball bearing housing, and this spacing desirably
is uniform between adjacent edge recesses.
[0009] The interface shell defines a respective plurality of lug tabs. Each one of the plurality
of lug tabs extends away from the interface shell in the radial direction and toward
the central axis of the retention housing. Each one of the plurality of lug tabs is
received in a respective one of the edge recesses to limit the deflections of the
spring fingers and self-arrest the distortion of the spring finger structure.
[0010] Between the free ends of the lug tabs of the interface shell that opposes the blind
ends of the edge recesses of the aft end of the ball bearing housing, there is defined
a radial gap that acts to retain the spring finger housing in a radial direction.
[0011] Between the side peripheral surfaces of the lug tabs of the interface shell that
oppose the side wall surfaces of the edge recesses of the aft end of the ball bearing
housing, there are defined circumferential gaps that act to retain the spring finger
housing in the circumferential direction. Each of these circumferential gaps desirably
is smaller than each of the radial gaps.
[0012] Between the forward peripheral surfaces of the lug tabs of the interface shell that
oppose the forward wall surfaces of the edge recesses of the aft end of the ball bearing
housing, there are defined axial gaps that act to retain the spring finger housing
in the axial direction.
[0013] The number, placement and dimensions of the lug tabs and the aforementioned radial
gaps and circumferential gaps are controlled according to the anticipated load in
consideration of the retention housing structure's size and material composition.
[0014] The resulting design of the retention housing integrates the structural components
such that they become capable of withstanding the torsional windup and high radial
loads that occur with the sudden increase in load that accompanies a blade failure,
whether a fan blade, a compressor blade or a turbine blade.
[0015] Moreover, due to the unique tapered and short spring finger design, the amount of
axial and radial space needed for the retention housing is reduced along with a concomitant
reduction in the weight of the retention housing structure while affording a very
high torsional load capability to the retention housing structure.
[0016] In another exemplary embodiment of the present disclosure, a gas turbine engine includes
a compressor section having at least one compressor and a turbine section located
downstream of the compressor section and including at least one turbine. The compressor
section can include a low pressure compressor and a high pressure compressor downstream
of the low pressure compressor. The turbine section includes a high pressure (HP)
turbine and a low pressure (LP) turbine downstream of the HP turbine. The gas turbine
engine also includes a high pressure shaft mechanically coupling the high pressure
compressor to the high pressure turbine via a ball bearing and which includes a retention
housing for the outer race of the ball bearing as described summarily above and in
greater detail below. Moreover, embodiments of the retention housing as summarily
described above and in more detail hereinafter with various alternative embodiments
also can be applied to systems with a low pressure shaft that need to address similar
challenges with ball bearing components.
[0017] Various features, aspects and advantages of the present invention will become better
understood with reference to the following description and appended claims. The accompanying
drawings, which are incorporated in and constitute a part of this specification, illustrate
embodiments of the invention and, together with the description, serve to explain
the principles of the invention.
[0018] In the drawings:
FIG. 1 is a schematic cross-sectional view of an exemplary gas turbine engine according
to various embodiments of the present disclosure.
FIG. 2 is an exploded, schematic cross-sectional view of components within the dashed
outline of the box designated FIG. 2 in FIG. 1.
FIG. 3 is a perspective view of an exemplary embodiment of the retention housing component
schematically depicted in FIG. 2.
FIG. 4 is a perspective view taken from the aft end of the embodiment of the retention
housing shown in FIG. 3 and with a portion of the aft end of the interface shell cut
away to reveal components of interest for purposes of facilitating explanation of
aspects of the invention.
FIG. 5 is a view partly in perspective and partly in cross-section of the region identified
by the arrows designated 5 - - 5 in FIG. 4 to illustrate both an axial gap and a radial
gap of the exemplary embodiment of the retention housing component depicted in FIGs.
2 - 4 and 6.
FIG. 6 is an enlarged, schematic cross-sectional view of the section identified by
the arrows designated 6 - - 6 in FIG. 4 to illustrate both a circumferential gap and
a radial gap of the exemplary embodiment of the retention housing component depicted
in FIG. 5.
[0019] Reference will now be made in detail to present embodiments of the invention, one
or more examples of which are illustrated in the accompanying drawings. Each example
is provided by way of explanation of the invention, not limitation of the invention.
In fact, it will be apparent to those skilled in the art that modifications and variations
can be made in the present invention without departing from the scope or spirit thereof.
For instance, features illustrated or described as part of one embodiment may be used
on another embodiment to yield a still further embodiment. Thus, it is intended that
the present invention covers such modifications and variations as come within the
scope of any claims and their equivalents. The detailed description uses numerical
and letter designations to refer to features in the drawings. Like or similar designations
in the drawings and description have been used to refer to like or similar parts of
the invention, and identical numerals indicate the same elements throughout the drawings.
As used herein, the terms "first", "second", and "third" may be used interchangeably
to distinguish one component from another and are not intended to signify location
or relative importance of the individual components.
[0020] It is to be understood that the ranges and limits mentioned herein include all sub-ranges
located within the prescribed limits, inclusive of the limits themselves unless otherwise
stated. For instance, a range from 100 to 200 also includes all possible sub-ranges,
examples of which are from 100 to 150, 170 to 190, 153 to 162, 145.3 to 149.6, and
187 to 200. Further, a limit of up to 7 also includes a limit of up to 5, up to 3,
and up to 4.5, as well as all sub-ranges within the limit, such as from about 0 to
5, which includes 0 and includes 5 and from 5.2 to 7, which includes 5.2 and includes
7.
[0021] The terms "upstream" and "downstream" refer to the relative direction with respect
to fluid flow in a fluid pathway. For example, "upstream" refers to the direction
from which the fluid flows, and "downstream" refers to the direction to which the
fluid flows. As used herein, the fluid can be a gas such as air or a liquid such as
a lubricant or liquid fuel. With respect to a device through which fluid is flowing,
unless otherwise stated or apparent from the context, assuming the device is stationary
or moving toward the fluid, then the fluid flows from the forward end of the device
toward the aft end of the device.
[0022] Referring now to the drawings, FIG. 1 is a schematic cross-sectional view of a gas
turbine engine that provides a typical environment in which one expects to find exemplary
embodiments of the present disclosure. More particularly, for the embodiment of FIG.
1, the gas turbine engine is a high-bypass turbofan jet engine 10, referred to herein
as "turbofan engine 10." Such engines typically embody a cylindrical symmetry. As
shown in FIG. 1, the turbofan engine 10 defines an axial direction A (extending parallel
to a longitudinal centerline 12 provided for reference) and a radial direction R that
is normal to the axial direction A. As schematically shown in FIG. 3 for example,
the circumferential direction C revolves 360° around the axial direction A. As generally
depicted in FIG. 1, the turbofan 10 includes a fan section 14 and a core turbine engine
16 disposed downstream from the fan section 14. The exemplary core turbine engine
16 depicted generally includes a substantially tubular outer casing 18 that defines
an annular inlet 20. As schematically shown in FIG. 1, the outer casing 18 encases,
in serial flow relationship, a compressor section including a booster or low pressure
(LP) compressor 22 followed downstream by a high pressure (HP) compressor 24; a combustion
section 26; a turbine section including a high pressure (HP) turbine 28 followed downstream
by a low pressure (LP) turbine 30; and a jet exhaust nozzle section 32. A high pressure
(HP) shaft or spool 34 drivingly connects the HP turbine 28 to the HP compressor 24
to rotate them in unison concentrically with respect to the longitudinal centerline
12. A low pressure (LP) shaft or spool 36 drivingly connects the LP turbine 30 to
the LP compressor 22 to rotate them in unison concentrically with respect to the longitudinal
centerline 12. The compressor section, combustion section 26, turbine section, and
nozzle section 32 together define a core air flowpath.
[0023] For the embodiment depicted in FIG. 1, the fan section 14 includes a variable pitch
fan 38 having a plurality of fan blades 40 coupled to a disk 42 in a spaced apart
manner. As depicted in FIG. 1, the fan blades 40 extend outwardly from the disk 42
generally along the radial direction R. Each fan blade 40 is rotatable relative to
the disk 42 about a pitch axis P by virtue of the fan blades 40 being operatively
coupled to a suitable actuation member 44 configured to collectively vary the pitch
of the fan blades 40 in unison. The fan blades 40, disk 42, and actuation member 44
are together rotatable about the longitudinal axis 12 via a fan shaft 45 that is powered
by the LP shaft 36 across a power gear box 46. The power gear box 46 includes a plurality
of gears for adjusting the rotational speed of the fan shaft 45 and thus the fan 38
relative to the LP shaft 36 to a more efficient rotational fan speed.
[0024] Referring still to the exemplary embodiment of FIG. 1, the disk 42 is covered by
a rotatable front hub 48 aerodynamically contoured to promote an airflow through the
plurality of fan blades 40. Additionally, the exemplary fan section 14 includes an
annular fan casing or outer nacelle 50 that circumferentially surrounds the fan 38
and/or at least a portion of the core turbine engine 16. It should be appreciated
that the nacelle 50 may be configured to be supported relative to the core turbine
engine 16 by a plurality of circumferentially-spaced outlet guide vanes 52. Alternatively,
the nacelle 50 also may be supported by struts of a structural fan frame. Moreover,
a downstream section 54 of the nacelle 50 may extend over an outer portion of the
core turbine engine 16 so as to define a bypass airflow groove 56 therebetween.
[0025] During operation of the turbofan engine 10, a volume of air 58 enters the turbofan
10 through an associated inlet 60 of the nacelle 50 and/or fan section 14. As the
volume of air 58 passes across the fan blades 40, a first portion of the air 58 as
indicated by arrow 62 is directed or routed into the bypass airflow groove 56, and
a second portion of the air 58 as indicated by arrow 64 is directed or routed into
the upstream section of the core air flowpath, or more specifically into the inlet
20 of the LP compressor 22. The ratio between the first portion of air 62 and the
second portion of air 64 is commonly known as a bypass ratio. The pressure of the
second portion of air 64 is then increased as it is routed through the high pressure
(HP) compressor 24 and into the combustion section 26, where the highly pressurized
air is mixed with fuel and burned to provide combustion gases 66.
[0026] The combustion gases 66 are routed into and expand through the HP turbine 28 where
a portion of thermal and/or kinetic energy from the combustion gases 66 is extracted
via sequential stages of HP turbine stator vanes 68 that are coupled to the outer
casing 18 and HP turbine rotor blades 70 that are coupled to the HP shaft or spool
34, thus causing the HP shaft or spool 34 to rotate, thereby supporting operation
of the HP compressor 24. The combustion gases 66 are then routed into and expand through
the LP turbine 30 where a second portion of thermal and kinetic energy is extracted
from the combustion gases 66 via sequential stages of LP turbine stator vanes 72 that
are coupled to the outer casing 18 and LP turbine rotor blades 74 that are coupled
to the LP shaft or spool 36, thus causing the LP shaft or spool 36 to rotate, thereby
supporting operation of the LP compressor 22 and rotation of the fan 38 via the power
gearbox 46.
[0027] The combustion gases 66 are subsequently routed through the jet exhaust nozzle section
32 of the core turbine engine 16 to provide propulsive thrust. Simultaneously, the
pressure of the first portion of air 62 is substantially increased as the first portion
of air 62 is routed through the bypass airflow groove 56 before it is exhausted from
a fan nozzle exhaust section 76 of the turbofan 10, also providing propulsive thrust.
The HP turbine 28, the LP turbine 30, and the jet exhaust nozzle section 32 at least
partially define a hot gas path 78 for routing the combustion gases 66 through the
core turbine engine 16.
[0028] It should be appreciated, however, that the exemplary turbofan engine 10 depicted
in FIG. 1 is by way of example only, and that in other exemplary embodiments, the
turbofan engine 10 may have any other suitable configuration. For example, in other
exemplary embodiments, the fan 38 may be configured in any other suitable manner (e.g.,
as a fixed pitch fan) and further may be supported using any other suitable fan frame
configuration. Moreover, it also should be appreciated that in other exemplary embodiments,
any other suitable HP compressor 24 and HP turbine 28 configurations may be utilized.
It also should be appreciated, that in still other exemplary embodiments, aspects
of the present disclosure may be incorporated into any other suitable gas turbine
engine. For example, in other exemplary embodiments, aspects of the present disclosure
may be incorporated into, e.g., a turboshaft engine, turboprop engine, turbocore engine,
turbojet engine, etc., as well as turbine engines used for other vehicles or in stationary
applications.
[0029] FIG. 2 presents an exploded, schematic cross-sectional view of components within
the dashed outline of the box designated FIG. 2 in FIG. 1. One end of a stator vane
67 of the HP compressor 24 is mounted to a stationary structural frame 69, while the
opposite end of the stator vane 67 is truncated in the view shown in FIG. 2 but would
be held fixed with respect to the outer casing 18. A flange 71 is connected to and
depends radially inwardly from the stationary structural frame 69. The inner ring
81 of a roller bearing 80 is non-rotatably coupled to the HP spool 34. The roller
bearing 80 includes a cage 82, a plurality of rollers 83 (only one roller 83 being
depicted in the view shown in FIG. 2) and an outer ring 84. As schematically shown
in FIG. 2, interface shell 86 non-rotatably couples the outer ring 84 of the roller
bearing 80 to the flange 71 of the stationary structural frame 69 via a mechanical
fastener such as a bolt 88. It should be appreciated that there will be a plurality
of such bolts 82 spaced apart from one another around the entire circumference of
the outer ring 84.
[0030] The inner ring 91 of a conventional ball bearing 90 is non-rotatably coupled to the
HP spool 34. The ball bearing 90 also includes a cage 92, a plurality of rotatable
balls 93 (only one ball 93 being shown in the view of FIG. 2) and an outer ring 94,
which is disposed radially outwardly farther away from the axis of rotation 12 than
the disposition of the inner ring 91.
[0031] In accordance with an embodiment of the present invention, a retention housing 98
is generally designated by the numeral 98 in FIGs. 2, 3, 4 and 5. The retention housing
98 is configured and disposed for retaining the ball bearing 90 and absorbing the
loads that result from a failure of one or more of a fan blade, a compressor blade
or a turbine blade when any such blade suffers any compromise of its structural integrity,
e.g., becomes at least partially detached or broken. As shown in FIG. 3 for example,
the retention housing 98 desirably includes a ball bearing housing 100 and a spring
finger housing 110. As schematically shown in FIG. 3 for example, each housing 100,
110 is a cylindrically symmetrical component that is disposed concentrically with
respect to a central rotational axis 89 of the retention housing 98.
[0032] As schematically shown in FIG. 2 for example, the retention housing 98 non-rotatably
couples to the flange 71 of the stationary structural frame 69, the outer ring 94
of the ball bearing 90 for a high pressure spool 34 of a gas turbine engine 10. The
spring finger housing 110 can be fixed with respect to the outer casing 18 as by being
mechanically bolted or welded to the flange 71. In one exemplary embodiment, the spring
finger housing 110 is rendered stationary by being coupled to the outer casing 18
in a manner that can be performed in any of a number of conventional manners, any
one of which being suitable for purposes of illustrating exemplary embodiments of
the present disclosure. As shown in FIG. 2 for example, this can be accomplished via
an annular mounting flange 113 that elongates generally in a radial direction from
the aft end 112 of the spring finger housing 110. The spring finger housing 110 and
the annular mounting flange 113 desirably are formed as a monolithic structure.
[0033] As shown in FIG. 3, the annular mounting flange 113 is drilled with a plurality of
axially extending mounting holes 114 therethrough. These mounting holes 114 are spaced
circumferentially apart from one another around the entire circumference of the mounting
flange 113. As shown in FIG. 2 for example, each of the mounting holes 114 through
the annular mounting flange 113 of the retention housing 98 desirably is configured
to receive a respective mounting bolt 88 (one of which being depicted in cross-section
in the view of FIG. 2) by which the mounting flange 113 may be attached to the flange
71 of the stationary structural frame 69. As shown in FIG. 2 for example, the annular
mounting flange 113 non-rotatably couples the spring finger housing 110 to the flange
71 of the stationary structural frame 69 via a mechanical fastener such as a bolt
88, which enables the retention housing 98 to be removed from the engine 10 for replacement,
maintenance and/or repair.
[0034] As schematically shown in FIGs. 3 and 5 for example, the ball bearing housing 100
defines its own forward end 101, which is disposed axially apart from its own aft
end 102. Similarly, as schematically shown in FIGs. 3 and 5 for example, the spring
finger housing 110 defines its own forward end 111, which is disposed axially apart
from its own aft end 112.
[0035] As shown in FIGs. 3 and 5 for example, between the forward end 101 and midpoint of
the ball bearing housing 100 there is defined a plurality of openings 103, each opening
103 extending radially through the ball bearing housing 100. Each such opening 103
is configured to receive therein an attachment bolt 104 such as depicted in cross-section
in FIG. 2 and which is locked by a retention nut 105. As shown in FIG. 3 for example,
the ball bearing housing 100 includes a retention flange 106, which extends radially
inwardly toward the central axis 89 from the aft end 102 of the ball bearing housing
100. As shown in FIG. 2 for example, the outer ring 94 of the ball bearing 90 is restrained
against axial movement by being held between the retention flange 106 of the ball
bearing housing 100 and the retention nut 105. Accordingly, under normal operating
conditions of the engine 10, the outer ring 94 of the ball bearing 90 becomes restrained
against axial movement with respect to the HP spool 34.
[0036] As schematically shown in FIGs. 2 and 3, the ball bearing housing 100 defines a cylindrical
inner surface 107 that is disposed equidistantly from the central axis of rotation
89 that extends in an axial direction (A). As shown in FIG. 2 for example, this inner
surface 107 of the ball bearing housing 100 of the retention housing 98 desirably
contacts the cylindrically shaped outer surface 95 of the outer ring 94 of the ball
bearing 90. As schematically shown in FIGs. 1 and 2 for example, the radial direction
(R) (and thus the diametrical direction) is defined in a direction that is normal
to the axial direction (A) and normal to the central axis of rotation 89.
[0037] As schematically shown in FIGs. 2, 3 and 5 for example, the spring finger housing
110 is disposed radially apart from and radially outwardly from the ball bearing housing
100 and disposed concentrically around the ball bearing housing 100.
[0038] As schematically shown in FIGs. 2, 3 and 5 for example, each embodiment of the retention
housing 98 desirably includes a connecting web 108 disposed at the forward end of
the retention housing 98. As shown in FIG. 5 for example, the connecting web 108 spans
between the forward end 111 of the spring finger housing 110 and the forward end 101
of the ball bearing housing 100. The connecting web 108 provides for the retention
housing 98 a fulcrum between the forward end 111 of the spring finger housing 110
and the forward end 101 of the ball bearing housing 100. Each connecting web 108 extends
generally in the radial direction (R) between the ball bearing housing 100 and the
spring finger housing 110. Desirably, the spring finger housing 110, the connecting
web 108 and the ball bearing housing 100 are formed as a monolithic structure, i.e.,
as a single piece without joints or seams.
[0039] As schematically shown in the cross - sectional portion of FIG. 5 in a virtual plane
defined by the radial (R) and axial (A) directions, the connecting web 108 takes on
a shape that resembles the letter C. As schematically shown in FIGs. 2 and 5 for example,
the connecting web 108 includes a radial section 1080 that extends in the radial direction
(R). As shown in FIG. 5 for example, a first elbow section 1081 connects the radial
section 1080 to the forward end 111 of the spring finger housing 110 by a gradual
bend over the right angle that exists between the radial (R) and axial (A) directions.
A second elbow section 1082 similarly connects the radial section 1080 to the forward
end 101 of the ball bearing housing 100. The connecting web 108 functions as a flexure
that permits small radial displacements between the aft end 102 of the ball bearing
housing 100 and the interface shell 86 and accordingly between the aft end 102 of
the ball bearing housing 100 and the aft end 112 of the spring finger housing 110.
[0040] As schematically shown in FIGs. 2, 4 and 5 for example, the aft end 102 of the ball
bearing housing 100 defines a plurality of edge recesses 130. As shown schematically
in FIG. 5 for example, each edge recess 130 extends in the radial direction (R) from
an open end 131 to a blind end 132 that is spaced apart in the radial direction (R)
from the open end 131 of the edge recess 130. As schematically shown in FIG. 5 for
example, the open end 131 of each edge recess 130 is facing toward the spring finger
housing 110. As to movements in the radial direction (R), the entrance to each edge
recess 130 is disposed closer to the spring finger housing 110 than is the disposition
of the blind end 132 of each edge recess 130, and thus the blind end 132 faces away
from the spring finger housing 110. Thus, when moving in the radial direction (R)
each edge recess 130 can be entered from open end 131 of each edge recess or 130 that
is defined in the aft end 102 of the ball bearing housing 100.
[0041] The blind end 132 of each edge recess 130 is "blind" because it prevents the edge
recess 130 from extending in a radial direction (R) completely through the aft end
102 of the ball bearing housing 100. Thus, the blind end 132 of each edge recess 130
closes off the end of each edge recess 130 that is opposite to the open end 131 of
each edge recess 130.
[0042] As shown schematically in FIG. 5 for example, the forward end of each edge recess
130 is defined by a forward wall 133 that desirably has a curved cylindrical shape.
As shown schematically in FIGs. 4 and 6 for example, each of the circumferentially
opposing ends of each edge recess 130 is defined by a respective side wall 134 that
limits the dimension of the edge recess 130 in the circumferential direction (C).
The length dimension of the forward wall 133 and side walls 134 measured in the radial
direction defines the depth of each edge recess 130. As shown schematically in FIG.
5 for example, the depth of each edge recess 130 in the radial direction is less than
the thickness of the aft end 102 of the of the ball bearing housing 100. Each edge
recess 130 has a depth that extends in the axial direction (A) from the forward wall
133 and through the aft end 102 of the ball bearing housing 100. Thus, when moving
in the axial direction (A) each edge recess 130 can be entered from the aft end 102
of the ball bearing housing 100.
[0043] As schematically shown in FIG. 4 for example, the interface shell 86 includes a plurality
of lug tabs 136. The lug tabs 136 are provided to cooperate with the edge recesses
130 so as to restrain movement between the aft end 102 of the ball bearing housing
100 and the interface shell 86, which as described above is non-rotatably coupled
to the outer casing 18 of the engine 10 shown in FIG. 1 for example. Each of the plurality
of lug tabs 136 extending radially from the interface shell 86 is disposed so as to
be aligned with a respective one of the plurality of edge recesses 130 to form a plurality
of aligned edge recesses 130 and lug tabs 136. Though only four lug tabs 136 are depicted
in the embodiment shown in FIG. 4 for example, other embodiments can include a different
number and relative sizing of the lug tabs 136 as warranted by the load requirements
that are anticipated in a particular application.
[0044] As schematically shown in FIG. 4 for example, each of the plurality of lug tabs 136
extends radially for a discrete distance in the radial direction (R) from the interface
shell 86 toward the central axis 89 of the retention housing 98. As schematically
shown in FIG. 5 for example, each of the plurality of lug tabs 136 also extends axially
for a discrete length in the axial direction (A). As schematically shown in FIGs.
4 and 6 for example, each of the plurality of lug tabs 136 also extends circumferentially
for a discrete arc length in the circumferential direction (C).
[0045] As schematically shown in FIGs. 5 and 6 for example, a respective one of the plurality
of lug tabs 136 is disposed in a respective one of the plurality of edge recesses
130, which is dimensioned to be larger than the dimensions of the lug tab 136. Accordingly,
as schematically shown in FIG. 5 for example, gaps are afforded between the cylindrical
surfaces that define the forward walls 133 of the edge recesses 130 and their concentrically
shaped cylindrical surfaces that define the peripheral exterior forward surfaces 138
of the lug tabs 136 to allow relative axial movement between the lug tab 136 and the
cylindrical forward wall surfaces 133 that define the edge recess 130. These gaps
will be disposed completely surround the peripheral surfaces 138 of the lug tab 136
and thus exist in both the axial direction (A) and circumferential direction (C).
Accordingly, the dimensions of each edge recess 130 measured in both the axial direction
(A) and the circumferential direction (C) are larger than the dimensions measured
in the same directions for the lug tab 136 by on the order of 20 thousandths to 50
thousandths of an inch. In this way, as shown schematically in FIG. 5 for example,
the retention housing 98 permits a certain amount of displacement in the axial direction
(A) to occur between the aft end 102 of the ball bearing housing 100 and the lug tab
136 that is projecting from the interface shell 86 before limiting the further axial
deflection of the retention housing 98 when the peripheral surfaces 138 of the lug
tab 136 come into contact with the cylindrical forward walls 133 that define the edge
recess 130. Similarly, as shown schematically in FIGs. 4 and 6 for example, the retention
housing 98 permits a certain amount of displacement in the circumferential direction
(C) to occur between the aft end 102 of the ball bearing housing 100 and the lug tab
136 that is projecting from the interface shell 86 before limiting the further circumferential
deflection of the retention housing 98 when the peripheral surfaces 138 of the lug
tab 136 come into contact with the side walls 134 that define the edge recess 130
in the circumferential direction (C).
[0046] Moreover, as shown schematically in FIGs. 5 and 6 for example, the blind end 132
of the edge recess 130 is disposed deep enough in the radial direction (R) to allow
for on the order of 20 thousandths to 50 thousandths of an inch gap between the free
end 137 of the lug tab 136 and the blind end 132 of the edge recess 130. This radial
gap allows the retention housing 98 to permit a certain amount of displacement in
the radial direction (R) to occur between the aft end 102 of the ball bearing housing
100 and the free end 137 of the lug tab 136 before limiting the further radial deflection
of the retention housing 98 when the free end 137 of the lug tab 136 eliminates the
radial gap by coming into contact with the blind end 132 of the edge recess 130. As
schematically shown in FIG. 6 for example, the circumferential gap of "X" dimension
is desirably smaller than and only a fraction of the radial gap of "2X" dimension.
[0047] As schematically shown in FIGs. 3 and 5 for example, the spring finger housing 110
defines a plurality of axially extending fingers 120. Each finger 120 defines a forward
end 121 and an aft end 122 disposed axially spaced apart from and opposite to the
forward end 121 of each respective finger 120. As shown in FIG. 3 for example, each
of the fingers 120 is spaced apart circumferentially from each of its adjacent nearest
circumferentially neighboring fingers 120 disposed around the spring finger housing
110, the circumferential direction being schematically indicated by the arrows designated
by the letter C. Desirably, the plurality of forward ends 121 of the fingers 120 and
the aft ends 122 of the fingers 120 form a monolithic structure with the spring finger
housing 110.
[0048] As schematically shown in FIGs. 3 and 5 for example, each of the fingers 120 includes
an intermediate portion that extends axially between each respective front end 121
and respective aft end 122 of each respective finger 120. Each of these intermediate
portions is narrower than each respective front end 121 and respective aft end 122
of each respective finger 120. Each finger 120 undergoes a tapering from each opposite
end 121, 122 of each respective finger 120 to a certain degree until the narrowed
dimension of that finger 120 is attained. Each opposite circumferential side and top
and bottom surface of each finger 120 can be machined to attain the desired tapering.
The specific relative dimensions of the intermediate portions with respect to the
front ends 121 and aft ends 122 will depend upon the dimensions and composition of
the retention housing 98 as well as the anticipated level of stress for which the
retention housing 98 is being engineered. In a typical case, because of this tapering
of the fingers 120, the axial lengths of the fingers 120 can be shortened relative
to the lengths of conventional fingers. Additionally, the tapering of the fingers
120 results in a reduction in the overall weight of the retention housing 98 when
compared to a conventional retention housing.
[0049] During normal engine operation, the ball bearing assembly 90 acts to retain the axial
position of the HP spool 34, and the associated roller bearing assembly 80 acts to
provide radial damping of the fan/rotor system. In the embodiment shown in FIGs. 2
and 6 for example, a radial bumper gap is defined between the aft end 102 of the ball
bearing housing 100 and the overlying inner surface 87 of the interface shell 86 that
is connected to the outer ring 84 of the roller bearing 80 as schematically shown
in FIG. 2 for example. The size of this radial bumper gap is controlled to absorb
the anticipated relatively small radial deviations of the HP spool 34 and typically
would have dimensions within a range on the order of 5 thousandths of an inch to 20
thousandths of an inch.
[0050] However, during a failure mode that results from a liberated fan blade, or a liberated
compressor blade or a liberated turbine blade, very high radial loads close the bumper
gap in the embodiment depicted in FIGs. 2 and 6. The very high radial loads create
a harmonic drive effect that loads the spring fingers 120 in torsion, i.e., in the
circumferential direction (C) as schematically indicated in FIG. 3. This torsion load
on the ball bearing 90 and its retention housing 98 results in an opposing sinusoidal
load distribution that tends to twist the spring fingers 120. However, this twisting
becomes damped by the restraining force exerted by the lug tabs 136 in the circumferential
direction to prevent larger circumferential movement between the ball bearing housing
100 and the spring finger housing 110.
[0051] The retention housing 98 described herein with its ball bearing housing 100 engaged
to the interference shell 86 in an arrangement of edge recesses matched up with respective
lug tabs has several advantages over the prior art. By employing edge recesses 130
of different sizes as well as different numbers of edge recesses 130 and different
spacings between adjacent edge recesses 130 around the circumference of the aft end
102 of the ball bearing housing 100 of the retention housing 98 to receive therein
respective lug tabs 136 of the interface shell 86 for the ball bearing 90, damping
can be controlled according to the anticipated load in consideration of the size and
material composition of the structure of the retention housing 98. The resulting design
of the retention housing 98 integrates the structural components such that they become
capable of withstanding the torsional windup and high radial loads that occur with
the sudden increase in load that accompanies a blade failure, whether a fan blade,
a compressor blade or a turbine blade. Moreover, due to the unique tapered and relatively
short design of the spring fingers 120, the amount of axial and radial space needed
for the retention housing 98 is reduced along with a concomitant reduction in the
weight of the retention housing 98 while affording a very high torsional load capability
to the retention housing 98.
[0052] This written description uses examples to disclose the invention, including the preferred
mode, and also to enable any person skilled in the art to practice the invention,
including making and using any devices or systems and performing any incorporated
methods. The patentable scope of the invention is defined by the claims, and may include
other examples that occur to those skilled in the art. Such other examples are intended
to be within the scope of the claims if they include structural elements that do not
differ from the literal language of the claims, or if they include equivalent structural
elements with insubstantial differences from the literal language of the claims. While
specific embodiments of the present invention have been described, it will be apparent
to those skilled in the art that various modifications thereto can be made without
departing from the spirit and scope of the invention. Accordingly, the foregoing description
of the preferred embodiment of the invention and the preferred mode for practicing
the invention are provided for the purpose of illustration only and not for the purpose
of limitation.
[0053] Various aspects and embodiments of the present invention are defined by the following
numbered clauses:
- 1. A retention housing for the outer race of a ball bearing for a high pressure spool
of a gas turbine engine, the axial spool defining an axis of rotation, the engine
having an interface shell configured to engage the retention housing to restrain axial
movement of the retention housing, the retention housing comprising:
a ball bearing housing defining a cylindrical inner surface that is disposed equidistantly
from an axis of rotation that extends in an axial direction, a radial direction being
defined in a direction that is normal to the axial direction, the ball bearing housing
defining a forward end disposed axially spaced apart from an aft end;
a spring finger housing disposed radially apart from and radially outwardly from the
ball bearing housing and disposed concentrically around the ball bearing housing,
the spring finger housing defining a forward end disposed axially spaced apart from
an aft end, the forward end of the spring finger housing being connected to the forward
end of the ball bearing housing;
the spring finger housing defining a plurality of axially extending fingers, each
finger defining a forward end and an aft end disposed axially spaced apart from and
opposite to the forward end of each respective finger, each finger being spaced circumferentially
apart from each nearest adjacent finger, the plurality of forward ends of the fingers
forming a monolithic structure with the spring finger housing, and the plurality of
aft ends of the fingers forming a monolithic structure with the spring finger housing;
and
the aft end of the ball bearing housing defining a plurality of edge recesses, each
edge recess being defined by a depth extending in the radial direction away from the
spring finger housing and extending in the aft direction away from the forward end
of the ball bearing housing.
- 2. The retention housing of clause 1, wherein the depth of each edge recess in the
radial direction is less than the thickness of the aft end of the of the ball bearing
housing.
- 3. The retention housing of any preceding clause, wherein each edge recess is configured
to engage the interface shell.
- 4. The retention housing of any preceding clause, wherein each edge recess is configured
to engage the interface shell in a manner so that each edge recess includes a circumferential
gap between the aft end of the of the ball bearing housing and the interface shell.
- 5. The retention housing of any preceding clause, wherein the circumferential gap
is on the order of 20 thousandths of an inch to 50 thousandths of an inch.
- 6. The retention housing of any preceding clause, wherein each finger includes an
intermediate portion disposed between the forward end and the aft end of each finger,
and the intermediate portion of each finger is tapered with respect to the forward
end and the aft end of each finger.
- 7. The retention housing of any preceding clause, wherein the intermediate portion
of each finger is thicker than the intermediate portion of each finger.
- 8. The retention housing of any preceding clause, wherein the spring finger housing
and the ball bearing housing are formed as a monolithic structure.
- 9. The retention housing of any preceding clause, further comprising an annular mounting
flange extending radially outwardly from the aft end of the spring finger housing.
- 10. The retention housing of any preceding clause, wherein the spring finger housing
and the annular mounting flange are formed as a monolithic structure.
- 11. A gas turbine engine, comprising:
a fan including a plurality of blades extending radially from a hub and rotatable
about a first axis of rotation defined centrally through the hub;
a compressor disposed downstream from the fan;
a turbine disposed downstream of the compressor;
a rotatable input shaft mechanically coupling the compressor to rotate in unison with
the turbine;
an engine envelope surrounding the fan, the compressor, and the turbine; and
an outer casing disposed within the engine envelope and surrounding the compressor
and the turbine;
a ball bearing having an inner race rotatable with respect to an outer race, wherein
the inner race is non-rotatably coupled to the input shaft;
an interface shell that is non-rotatably coupled to the outer casing; and
a retention housing that non-rotatably couples the outer casing to the outer race
of the ball bearing; and
wherein the retention housing further including:
a ball bearing housing defining a cylindrical inner surface that is disposed equidistantly
from an axis of rotation that extends in an axial direction, a radial direction being
defined in a direction that is normal to the axial direction, the ball bearing housing
defining a forward end disposed axially spaced apart from an aft end;
a spring finger housing disposed radially apart from and radially outwardly from the
ball bearing housing and disposed concentrically around the ball bearing housing,
the spring finger housing defining a forward end disposed axially spaced apart from
an aft end, the forward end of the spring finger housing being connected to the forward
end of the ball bearing housing,
the spring finger housing defining a plurality of axially extending fingers, each
finger defining a forward end and an aft end disposed axially spaced apart from and
opposite to the forward end of each respective finger, each finger being spaced circumferentially
apart from each nearest adjacent finger, the plurality of forward ends of the fingers
forming a monolithic structure with the spring finger housing, and the plurality of
aft ends of the fingers forming a monolithic structure with the spring finger housing,
and
the aft end of the ball bearing housing defining a plurality of edge recesses, each
edge recess extending in the radial direction and defining an open end.
- 12. The gas turbine engine of any preceding clause, wherein each edge recess defines
a blind end spaced apart in the radial direction from the open end.
- 13. The gas turbine engine of any preceding clause, further comprising a plurality
of lug tabs, a respective one of the plurality of lug tabs being disposed in a respective
one of the plurality of edge recesses.
- 14. The gas turbine engine of any preceding clause, wherein the interface shell defines
a plurality of lug tabs, each respective one of the plurality of lug tabs being aligned
with a respective one of the plurality of edge recesses to form a plurality of aligned
lug tabs and edge recesses and wherein a respective one of the plurality of lug tabs
is disposed in a respective one of the aligned edge recesses.
- 15. The gas turbine engine of any preceding clause, wherein each lug tab has one end
that is disposed at least partially within the respective edge recess and an opposite
end projecting radially from the interface shell.
- 16. The gas turbine engine of any preceding clause, wherein each edge recess defines
a blind end spaced apart in the radial direction from the open end of each respective
edge recess and disposed farther away from the spring finger housing than the disposition
of the open end of each edge recess.
- 17. The gas turbine engine of any preceding clause, wherein the end of each respective
lug tab that projects from the interface shell defines a free end that is spaced apart
in the radial direction from the blind end of the respective edge recess and defines
a radial gap between the respective free end and the respective blind end.
- 18. The gas turbine engine of any preceding clause, wherein each of the plurality
of lug tabs extends radially from the interface shell, each respective one of the
plurality of lug tabs being aligned with a respective one of the plurality of edge
recesses to form a plurality of aligned lug tabs and edge recesses and wherein each
of the plurality of lug tabs defines an exterior peripheral surface that is disposed
in opposition to a radially extending wall that partially defines a respective edge
recess.
- 19. The gas turbine engine of any preceding clause, wherein a circumferential gap
is defined between the exterior peripheral surface of a respective one of the plurality
of lug tabs and the radially extending wall that partially defines the respective
edge recess.
- 20. The gas turbine engine of any preceding clause, wherein an axial gap is defined
between the exterior peripheral surface of a respective one of the plurality of lug
tabs and the radially extending wall that partially defines the respective edge recess.
1. A retention housing (98) for the outer race of a ball bearing for a high pressure
spool (34) of a gas turbine engine (10), the high pressure spool (34) defining an
axis of rotation, the engine (10) having an interface shell (86) configured to engage
the retention housing (98) to restrain axial movement of the retention housing (98),
the retention housing (98) comprising:
a ball bearing housing (100) defining a cylindrical inner surface (107) that is disposed
equidistantly from an axis of rotation that extends in an axial direction, a radial
direction being defined in a direction that is normal to the axial direction, the
ball bearing housing (100) defining a forward end disposed axially spaced apart from
an aft end;
a spring finger housing (110) disposed radially apart from and radially outwardly
from the ball bearing housing (100) and disposed concentrically around the ball bearing
housing (100), the spring finger housing (110) defining a forward end disposed axially
spaced apart from an aft end, the forward end of the spring finger housing (110) being
connected to the forward end of the ball bearing housing (100);
the spring finger housing (110) defining a plurality of axially extending fingers
(120), each finger (120) defining a forward end and an aft end disposed axially spaced
apart from and opposite to the forward end of each respective finger (120), each finger
(120) being spaced circumferentially apart from each nearest adjacent finger (120),
the plurality of forward ends of the fingers (120) forming a monolithic structure
with the spring finger housing (110), and the plurality of aft ends of the fingers
(120) forming a monolithic structure with the spring finger housing (110); and
the aft end of the ball bearing housing (100) defining a plurality of edge recesses
(130), each edge recess (130) being defined by a depth extending in the radial direction
away from the spring finger housing (110) and extending in the aft direction away
from the forward end of the ball bearing housing (100).
2. The retention housing (98) of claim 1, wherein the depth of each edge recess (130)
in the radial direction is less than the thickness of the aft end of the ball bearing
housing (100).
3. The retention housing (98) of any preceding claim, wherein each edge recess (130)
is configured to engage the interface shell (86).
4. The retention housing (98) of any preceding claim, wherein each edge recess (130)
is configured to engage the interface shell (86) in a manner so that each edge recess
(130) includes a circumferential gap between the aft end of the of the ball bearing
housing (100) and the interface shell (86).
5. The retention housing (98) of any preceding claim, wherein the circumferential gap
is on the order of 20 thousandths of an inch to 50 thousandths of an inch.
6. The retention housing (98) of any preceding claim, wherein each finger (120) includes
an intermediate portion (123) disposed between the forward end and the aft end of
each finger (120), and the intermediate portion (123) of each finger (120) is tapered
with respect to the forward end and the aft end of each finger (120).
7. A gas turbine engine (10), comprising:
a fan (38) including a plurality of blades (40) extending radially from a hub (42)
and rotatable about a first axis of rotation defined centrally through the hub (42);
a compressor (e.g., 22) disposed downstream from the fan (38);
a turbine (e.g., 36) disposed downstream of the compressor (e.g., 22);
a rotatable input shaft (45) mechanically coupling the compressor (e.g., 22) to rotate
in unison with the turbine (e.g., 36);
an engine envelope (50) surrounding the fan, the compressor (e.g., 22), and the turbine
(e.g., 36); and
an outer casing (18) disposed within the engine envelope (50) and surrounding the
compressor (e.g., 22) and the turbine (e.g., 36);
a ball bearing (90) having an inner race (91) rotatable with respect to an outer race
(94), wherein the inner race (91) is non-rotatably coupled to the input shaft (45);
an interface shell (86) that is non-rotatably coupled to the outer casing (18); and
a retention housing (98) that non-rotatably couples the outer casing (18) to the outer
race (94) of the ball bearing (90); and
wherein the retention housing (98) further including:
a ball bearing housing (100) defining a cylindrical inner surface (107) that is disposed
equidistantly from an axis of rotation that extends in an axial direction, a radial
direction being defined in a direction that is normal to the axial direction, the
ball bearing housing (100) defining a forward end disposed axially spaced apart from
an aft end;
a spring finger housing (110) disposed radially apart from and radially outwardly
from the ball bearing housing (100) and disposed concentrically around the ball bearing
housing (100), the spring finger housing (110) defining a forward end disposed axially
spaced apart from an aft end, the forward end of the spring finger housing (110) being
connected to the forward end of the ball bearing housing (100),
the spring finger housing (110) defining a plurality of axially extending fingers
(120), each finger (120) defining a forward end and an aft end disposed axially spaced
apart from and opposite to the forward end of each respective finger (120), each finger
(120) being spaced circumferentially apart from each nearest adjacent finger (120),
the plurality of forward ends of the fingers (120) forming a monolithic structure
with the spring finger housing (110), and the plurality of aft ends of the fingers
(120) forming a monolithic structure with the spring finger housing (110), and
the aft end of the ball bearing housing (100) defining a plurality of edge recesses
(130), each edge recess (130) extending in the radial direction and defining an open
end.
8. The gas turbine engine (10) of claim 7, wherein each edge recess (130) defines a blind
end (132) spaced apart in the radial direction from the open end (131).
9. The gas turbine engine (10) of claim 7 or claim 8, further comprising a plurality
of lug tabs (136), a respective one of the plurality of lug tabs (136) being disposed
in a respective one of the plurality of edge recesses (130).
10. The gas turbine engine (10) of claim 9, wherein the interface shell (86) defines a
plurality of lug tabs (136), each respective one of the plurality of lug tabs (136)
being aligned with a respective one of the plurality of edge recesses (130) to form
a plurality of aligned lug tabs (136) and edge recesses (130) and wherein a respective
one of the plurality of lug tabs (136) is disposed in a respective one of the aligned
edge recesses (130).
11. The gas turbine engine (10) of claim 10, wherein each of the plurality of lug tabs
(136) extends radially from the interface shell (86), and wherein each of the plurality
of lug tabs (136) defines an exterior peripheral surface (138) that is disposed in
opposition to a radially extending wall (133) that partially defines a respective
edge recess (130).